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Myocytes die by multiple mechanisms in failing human hearts
Sawa Kostin1, Lieven Pool, Albrecht Elsässer
1Max-Planck-Institute, Department of Experimental Cardiology, Benekestr 2D-61231 Bad Nauheim, Germany. skostin@kerckhoff.mpg.de
Abstract:
We tested the hypothesis that myocyte loss in failing human hearts occurs by different mechanisms: apoptosis, oncosis, and autophagic cell death. Explanted hearts from 19 patients with idiopathic dilated cardiomyopathy (EF< or =20%) and 7 control hearts were analyzed. Myocyte apoptosis revealed by caspase-3 activation and TUNEL staining occurred at a rate of 0.002+/-0.0005% (P<0.05 versus control) and oncosis assessed by complement 9 labeling at 0.06+/-0.001% (P<0.05). Cellular degeneration including appearance of ubiquitin containing autophagic vacuoles and nuclear disintegration was present at the ultrastructural level. Nuclear and cytosolic ubiquitin/protein accumulations occurred at 0.08+/-0.004% (P<0.05). The ubiquitin-activating enzyme E1 and the ligase E3 were not different from control. In contrast, ubiquitin mRNA levels were 1.8-fold (P<0.02) elevated, and the conjugating enzyme E2 was 2.3-fold upregulated (P<0.005). The most important finding, however, is the 2.3-fold downregulation of the deubiquitination enzyme isopeptidase-T and the 1.5-fold reduction of the ubiquitin-fusion degradation system-1, which in conjunction with unchanged proteasomal subunit levels and proteasomal activity results in massive storage of ubiquitin/protein complexes and in autophagic cell death. A 2-fold decrease of cathepsin D might be an additional factor responsible for the accumulation of ubiquitin/protein conjugates. It is concluded that in human failing hearts apoptosis, oncosis, and autophagy act in parallel to varying degrees. A disturbed balance between a high rate of ubiquitination and inadequate degradation of ubiquitin/protein conjugates may contribute to autophagic cell death. Together, these different types of cell death play a significant role for myocyte disappearance and the development of contractile dysfunction in failing hearts.
Insights
Heart failure involves myocyte loss through apoptosis, oncosis, and autophagic cell death. Imbalances in protein ubiquitination and degradation contribute to autophagic cell death in failing human hearts.
Area of Science:
- Cardiovascular Biology
- Cellular Pathology
- Molecular Medicine
Background:
- Human failing hearts exhibit significant myocyte loss, impacting cardiac function.
- The precise mechanisms driving myocyte death in heart failure are not fully elucidated.
- Understanding cell death pathways is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the roles of apoptosis, oncosis, and autophagic cell death in human failing hearts.
- To analyze the ubiquitin-proteasome system and autophagic machinery in failing cardiomyocytes.
- To determine the contribution of disturbed protein degradation to myocyte loss.
Main Methods:
- Analysis of explanted hearts from idiopathic dilated cardiomyopathy patients and controls.
- Assessment of apoptosis using caspase-3 activation and TUNEL staining.
- Evaluation of oncosis via complement 9 labeling.
- Ultrastructural analysis for autophagic vacuoles and ubiquitin/protein accumulation.
- Quantification of ubiquitin-related enzymes and mRNA levels.
Main Results:
- Apoptosis and oncosis were significantly increased in failing hearts compared to controls.
- Elevated ubiquitin mRNA and UBE2E2 expression suggest increased protein ubiquitination.
- Significant downregulation of isopeptidase-T and reduced ubiquitin-fusion degradation system-1 were observed.
- Massive accumulation of ubiquitin/protein complexes and autophagic cell death were prominent findings.
- Decreased cathepsin D may further contribute to protein conjugate accumulation.
Conclusions:
- Human failing hearts exhibit parallel myocyte loss via apoptosis, oncosis, and autophagic cell death.
- An imbalance between enhanced ubiquitination and impaired protein degradation contributes to autophagic cell death.
- These distinct cell death mechanisms are significant contributors to myocyte loss and contractile dysfunction in heart failure.